1 | /*
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2 | * Delphes: a framework for fast simulation of a generic collider experiment
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3 | * Copyright (C) 2012-2014 Universite catholique de Louvain (UCL), Belgium
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4 | *
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5 | * This program is free software: you can redistribute it and/or modify
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6 | * it under the terms of the GNU General Public License as published by
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7 | * the Free Software Foundation, either version 3 of the License, or
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8 | * (at your option) any later version.
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9 | *
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10 | * This program is distributed in the hope that it will be useful,
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11 | * but WITHOUT ANY WARRANTY; without even the implied warranty of
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12 | * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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13 | * GNU General Public License for more details.
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14 | *
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15 | * You should have received a copy of the GNU General Public License
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16 | * along with this program. If not, see <http://www.gnu.org/licenses/>.
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17 | */
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18 |
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19 | /** \class ParticlePropagator
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20 | *
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21 | * Propagates charged and neutral particles
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22 | * from a given vertex to a cylinder defined by its radius,
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23 | * its half-length, centered at (0,0,0) and with its axis
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24 | * oriented along the z-axis.
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25 | *
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26 | * \author P. Demin - UCL, Louvain-la-Neuve
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27 | *
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28 | */
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29 |
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30 | #include "modules/ParticlePropagator.h"
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31 |
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32 | #include "classes/DelphesClasses.h"
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33 | #include "classes/DelphesFactory.h"
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34 | #include "classes/DelphesFormula.h"
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35 |
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36 | #include "ExRootAnalysis/ExRootClassifier.h"
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37 | #include "ExRootAnalysis/ExRootFilter.h"
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38 | #include "ExRootAnalysis/ExRootResult.h"
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39 |
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40 | #include "TDatabasePDG.h"
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41 | #include "TFormula.h"
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42 | #include "TLorentzVector.h"
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43 | #include "TMath.h"
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44 | #include "TObjArray.h"
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45 | #include "TRandom3.h"
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46 | #include "TString.h"
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47 |
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48 | #include <algorithm>
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49 | #include <iostream>
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50 | #include <sstream>
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51 | #include <stdexcept>
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52 |
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53 | using namespace std;
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54 |
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55 | //------------------------------------------------------------------------------
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56 |
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57 | ParticlePropagator::ParticlePropagator() :
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58 | fItInputArray(0)
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59 | {
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60 | }
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61 |
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62 | //------------------------------------------------------------------------------
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63 |
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64 | ParticlePropagator::~ParticlePropagator()
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65 | {
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66 | }
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67 |
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68 | //------------------------------------------------------------------------------
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69 |
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70 | void ParticlePropagator::Init()
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71 | {
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72 | fRadius = GetDouble("Radius", 1.0);
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73 | fRadius2 = fRadius * fRadius;
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74 | fHalfLength = GetDouble("HalfLength", 3.0);
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75 | fBz = GetDouble("Bz", 0.0);
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76 | if(fRadius < 1.0E-2)
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77 | {
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78 | cout << "ERROR: magnetic field radius is too low\n";
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79 | return;
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80 | }
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81 | if(fHalfLength < 1.0E-2)
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82 | {
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83 | cout << "ERROR: magnetic field length is too low\n";
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84 | return;
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85 | }
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86 |
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87 | fRadiusMax = GetDouble("RadiusMax", fRadius);
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88 | fHalfLengthMax = GetDouble("HalfLengthMax", fHalfLength);
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89 |
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90 | // import array with output from filter/classifier module
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91 |
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92 | fInputArray = ImportArray(GetString("InputArray", "Delphes/stableParticles"));
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93 | fItInputArray = fInputArray->MakeIterator();
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94 |
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95 | // import beamspot
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96 | try
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97 | {
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98 | fBeamSpotInputArray = ImportArray(GetString("BeamSpotInputArray", "BeamSpotFilter/beamSpotParticle"));
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99 | }
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100 | catch(runtime_error &e)
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101 | {
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102 | fBeamSpotInputArray = 0;
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103 | }
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104 | // create output arrays
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105 |
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106 | fOutputArray = ExportArray(GetString("OutputArray", "stableParticles"));
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107 | fNeutralOutputArray = ExportArray(GetString("NeutralOutputArray", "neutralParticles"));
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108 | fChargedHadronOutputArray = ExportArray(GetString("ChargedHadronOutputArray", "chargedHadrons"));
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109 | fElectronOutputArray = ExportArray(GetString("ElectronOutputArray", "electrons"));
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110 | fMuonOutputArray = ExportArray(GetString("MuonOutputArray", "muons"));
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111 | }
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112 |
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113 | //------------------------------------------------------------------------------
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114 |
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115 | void ParticlePropagator::Finish()
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116 | {
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117 | if(fItInputArray) delete fItInputArray;
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118 | }
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119 |
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120 | //------------------------------------------------------------------------------
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121 |
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122 | void ParticlePropagator::Process()
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123 | {
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124 | Candidate *candidate, *mother, *particle;
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125 | TLorentzVector particlePosition, particleMomentum, beamSpotPosition;
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126 | Double_t px, py, pz, pt, pt2, e, q;
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127 | Double_t x, y, z, t, r;
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128 | Double_t x_c, y_c, r_c, phi_c, phi_0;
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129 | Double_t x_t, y_t, z_t, r_t;
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130 | Double_t t_z, t_r;
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131 | Double_t discr;
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132 | Double_t gammam, omega;
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133 | Double_t xd, yd, zd;
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134 | Double_t l, d0, dz, ctgTheta, alpha;
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135 | Double_t bsx, bsy, bsz;
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136 | Double_t rxp, rdp, t_R;
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137 | Double_t td, pio, phid, sign_pz, vz;
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138 |
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139 | const Double_t c_light = 2.99792458E8;
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140 |
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141 | if(!fBeamSpotInputArray || fBeamSpotInputArray->GetSize() == 0)
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142 | beamSpotPosition.SetXYZT(0.0, 0.0, 0.0, 0.0);
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143 | else
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144 | {
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145 | Candidate &beamSpotCandidate = *((Candidate *)fBeamSpotInputArray->At(0));
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146 | beamSpotPosition = beamSpotCandidate.Position;
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147 | }
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148 |
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149 | fItInputArray->Reset();
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150 | while((candidate = static_cast<Candidate *>(fItInputArray->Next())))
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151 | {
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152 | if(candidate->GetCandidates()->GetEntriesFast() == 0)
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153 | {
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154 | particle = candidate;
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155 | }
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156 | else
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157 | {
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158 | particle = static_cast<Candidate *>(candidate->GetCandidates()->At(0));
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159 | }
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160 |
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161 | particlePosition = particle->Position;
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162 | particleMomentum = particle->Momentum;
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163 |
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164 | // Constants
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165 |
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166 | x = particlePosition.X() * 1.0E-3;
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167 | y = particlePosition.Y() * 1.0E-3;
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168 | z = particlePosition.Z() * 1.0E-3;
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169 |
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170 | bsx = beamSpotPosition.X() * 1.0E-3;
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171 | bsy = beamSpotPosition.Y() * 1.0E-3;
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172 | bsz = beamSpotPosition.Z() * 1.0E-3;
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173 |
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174 | q = particle->Charge;
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175 |
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176 | // check that particle position is inside the cylinder
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177 | if(TMath::Hypot(x, y) > fRadiusMax || TMath::Abs(z) > fHalfLengthMax)
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178 | {
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179 | continue;
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180 | }
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181 |
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182 | px = particleMomentum.Px();
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183 | py = particleMomentum.Py();
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184 | pz = particleMomentum.Pz();
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185 | pt = particleMomentum.Pt();
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186 | pt2 = particleMomentum.Perp2();
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187 | e = particleMomentum.E();
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188 |
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189 | if(pt2 < 1.0E-9)
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190 | {
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191 | continue;
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192 | }
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193 |
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194 | if(TMath::Hypot(x, y) > fRadius || TMath::Abs(z) > fHalfLength)
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195 | {
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196 | mother = candidate;
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197 | candidate = static_cast<Candidate *>(candidate->Clone());
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198 |
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199 | candidate->InitialPosition = particlePosition;
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200 | candidate->Position = particlePosition;
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201 | candidate->L = 0.0;
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202 |
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203 | candidate->Momentum = particleMomentum;
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204 | candidate->AddCandidate(mother);
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205 |
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206 | fOutputArray->Add(candidate);
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207 | }
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208 | else if(TMath::Abs(q) < 1.0E-9 || TMath::Abs(fBz) < 1.0E-9)
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209 | {
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210 |
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211 | rxp = x*py - y*px;
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212 | rdp = x*px + y*py;
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213 |
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214 | discr = fRadius*fRadius*pt*pt - rxp*rxp;
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215 |
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216 | t_R = e * (sqrt(discr) - rdp) / (c_light * pt * pt);
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217 | t_z = e * (TMath::Sign(fHalfLengthMax, pz) - z) / ( c_light * pz);
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218 |
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219 | t = TMath::Min(t_R, t_z);
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220 |
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221 | x_t = x + px*t*c_light/e;
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222 | y_t = y + py*t*c_light/e;
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223 | z_t = z + pz*t*c_light/e;
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224 | r_t = TMath::Hypot(x_t, y_t);
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225 |
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226 | l = TMath::Sqrt( (x_t - x)*(x_t - x) + (y_t - y)*(y_t - y) + (z_t - z)*(z_t - z));
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227 |
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228 | mother = candidate;
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229 | candidate = static_cast<Candidate*>(candidate->Clone());
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230 |
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231 | candidate->InitialPosition = particlePosition;
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232 | candidate->Position.SetXYZT(x_t*1.0E3, y_t*1.0E3, z_t*1.0E3, particlePosition.T() + t*c_light*1.0E3);
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233 | candidate->L = l*1.0E3;
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234 |
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235 | candidate->Momentum = particleMomentum;
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236 | candidate->AddCandidate(mother);
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237 |
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238 | fOutputArray->Add(candidate);
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239 |
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240 | if(TMath::Abs(q) > 1.0E-9)
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241 | {
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242 | switch(TMath::Abs(candidate->PID))
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243 | {
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244 | case 11:
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245 | fElectronOutputArray->Add(candidate);
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246 | break;
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247 | case 13:
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248 | fMuonOutputArray->Add(candidate);
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249 | break;
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250 | default:
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251 | fChargedHadronOutputArray->Add(candidate);
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252 | }
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253 | }
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254 | else
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255 | {
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256 | fNeutralOutputArray->Add(candidate);
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257 | }
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258 | }
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259 | else
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260 | {
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261 |
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262 | // 1. initial transverse momentum p_{T0}: Part->pt
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263 | // initial transverse momentum direction phi_0 = -atan(p_X0/p_Y0)
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264 | // relativistic gamma: gamma = E/mc^2; gammam = gamma * m
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265 | // gyration frequency omega = q/(gamma m) fBz
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266 | // helix radius r = p_{T0} / (omega gamma m)
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267 |
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268 | gammam = e*1.0E9 / (c_light*c_light); // gammam in [eV/c^2]
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269 | omega = q * fBz / (gammam); // omega is here in [89875518/s]
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270 | r = pt / (q * fBz) * 1.0E9/c_light; // in [m]
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271 |
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272 | phi_0 = TMath::ATan2(py, px); // [rad] in [-pi, pi]
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273 |
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274 | // 2. helix axis coordinates
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275 | x_c = x + r*TMath::Sin(phi_0);
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276 | y_c = y - r*TMath::Cos(phi_0);
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277 | r_c = TMath::Hypot(x_c, y_c);
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278 | phi_c = TMath::ATan(y_c/x_c);
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279 | if(x_c < 0.0) phi_c -= TMath::Sign(1., phi_c)*TMath::Pi();
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280 |
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281 | //Find the time of closest approach
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282 | td = (phi_0 - TMath::ATan(-x_c/y_c))/omega;
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283 |
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284 | //Remove all the modulo pi that might have come from the atan
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285 | pio = fabs(TMath::Pi()/omega);
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286 | while(fabs(td) > 0.5*pio)
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287 | {
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288 | td -= TMath::Sign(1., td)*pio;
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289 | }
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290 |
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291 | //Compute the coordinate of closed approach to z axis
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292 | //if wants wtr beamline need to be changedto re-center with a traslation of the z axis
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293 | phid = phi_0 - omega*td;
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294 | xd = x_c - r*TMath::Sin(phid);
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295 | yd = y_c + r*TMath::Cos(phid);
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296 | zd = z + c_light*(pz/e)*td;
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297 |
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298 | //Compute momentum at closest approach (perigee??)
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299 | px = pt*TMath::Cos(phid);
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300 | py = pt*TMath::Sin(phid);
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301 |
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302 | particleMomentum.SetPtEtaPhiE(pt, particleMomentum.Eta(), phid, particleMomentum.E());
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303 |
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304 | // calculate additional track parameters (correct for beamspot position)
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305 | d0 = ((xd - bsx) * py - (yd - bsy) * px) / pt;
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306 | dz = zd - bsz;
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307 | ctgTheta = 1.0 / TMath::Tan (particleMomentum.Theta());
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308 |
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309 | // 3. time evaluation t = TMath::Min(t_r, t_z)
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310 | // t_r : time to exit from the sides
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311 | // t_z : time to exit from the front or the back
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312 | t = 0;
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313 | t_z = 0;
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314 | sign_pz = (pz > 0.0) ? 1 : -1;
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315 | if(pz == 0.0) t_z = 1.0E99;
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316 | else t_z = gammam / (pz*1.0E9/c_light) * (-z + fHalfLength*sign_pz);
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317 |
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318 | if(r_c + TMath::Abs(r) < fRadius) // helix does not cross the cylinder sides
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319 | {
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320 | t = t_z;
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321 | }
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322 | else
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323 | {
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324 | alpha = -(fRadius*fRadius - r*r - r_c*r_c)/(2*fabs(r)*r_c);
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325 | alpha = fabs(TMath::ACos(alpha));
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326 | t_r = td + alpha/fabs(omega);
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327 |
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328 | t = TMath::Min(t_r, t_z);
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329 | }
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330 |
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331 | x_t = x_c - r*TMath::Sin(phi_0 - omega*t);
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332 | y_t = y_c + r*TMath::Cos(phi_0 - omega*t);
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333 | z_t = z + c_light*t*pz/e;
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334 | r_t = TMath::Hypot(x_t, y_t);
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335 |
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336 | // compute path length for an helix
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337 | vz = pz*1.0E9 / c_light / gammam;
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338 | //lenght of the path from production to tracker
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339 | l = t * TMath::Sqrt(vz*vz + r*r*omega*omega);
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340 |
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341 | if(r_t > 0.0)
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342 | {
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343 | // store these variables before cloning
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344 | if(particle == candidate)
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345 | {
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346 | particle->D0 = d0 * 1.0E3;
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347 | particle->DZ = dz * 1.0E3;
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348 | particle->P = particleMomentum.P();
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349 | particle->PT = pt;
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350 | particle->CtgTheta = ctgTheta;
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351 | particle->Phi = particleMomentum.Phi();
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352 | }
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353 |
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354 | mother = candidate;
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355 | candidate = static_cast<Candidate *>(candidate->Clone());
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356 |
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357 | candidate->InitialPosition = particlePosition;
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358 | candidate->Position.SetXYZT(x_t * 1.0E3, y_t * 1.0E3, z_t * 1.0E3, particlePosition.T() + t * c_light * 1.0E3);
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359 |
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360 | candidate->Momentum = particleMomentum;
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361 |
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362 | candidate->L = l * 1.0E3;
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363 |
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364 | candidate->Xd = xd * 1.0E3;
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365 | candidate->Yd = yd * 1.0E3;
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366 | candidate->Zd = zd * 1.0E3;
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367 |
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368 | candidate->AddCandidate(mother);
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369 |
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370 | fOutputArray->Add(candidate);
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371 | switch(TMath::Abs(candidate->PID))
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372 | {
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373 | case 11:
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374 | fElectronOutputArray->Add(candidate);
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375 | break;
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376 | case 13:
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377 | fMuonOutputArray->Add(candidate);
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378 | break;
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379 | default:
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380 | fChargedHadronOutputArray->Add(candidate);
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381 | }
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382 | }
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383 | }
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384 | }
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385 | }
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386 |
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387 | //------------------------------------------------------------------------------
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